EP3591747B1 - Lithium-ion secondary battery - Google Patents
Lithium-ion secondary battery Download PDFInfo
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- EP3591747B1 EP3591747B1 EP19178036.0A EP19178036A EP3591747B1 EP 3591747 B1 EP3591747 B1 EP 3591747B1 EP 19178036 A EP19178036 A EP 19178036A EP 3591747 B1 EP3591747 B1 EP 3591747B1
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- lithium
- ion secondary
- electrolyte
- secondary battery
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M10/00—Secondary cells; Manufacture thereof
- H01M10/05—Accumulators with non-aqueous electrolyte
- H01M10/052—Li-accumulators
- H01M10/0525—Rocking-chair batteries, i.e. batteries with lithium insertion or intercalation in both electrodes; Lithium-ion batteries
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M10/00—Secondary cells; Manufacture thereof
- H01M10/05—Accumulators with non-aqueous electrolyte
- H01M10/056—Accumulators with non-aqueous electrolyte characterised by the materials used as electrolytes, e.g. mixed inorganic/organic electrolytes
- H01M10/0564—Accumulators with non-aqueous electrolyte characterised by the materials used as electrolytes, e.g. mixed inorganic/organic electrolytes the electrolyte being constituted of organic materials only
- H01M10/0566—Liquid materials
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M10/00—Secondary cells; Manufacture thereof
- H01M10/05—Accumulators with non-aqueous electrolyte
- H01M10/056—Accumulators with non-aqueous electrolyte characterised by the materials used as electrolytes, e.g. mixed inorganic/organic electrolytes
- H01M10/0564—Accumulators with non-aqueous electrolyte characterised by the materials used as electrolytes, e.g. mixed inorganic/organic electrolytes the electrolyte being constituted of organic materials only
- H01M10/0566—Liquid materials
- H01M10/0568—Liquid materials characterised by the solutes
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- H—ELECTRICITY
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- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M10/00—Secondary cells; Manufacture thereof
- H01M10/05—Accumulators with non-aqueous electrolyte
- H01M10/056—Accumulators with non-aqueous electrolyte characterised by the materials used as electrolytes, e.g. mixed inorganic/organic electrolytes
- H01M10/0564—Accumulators with non-aqueous electrolyte characterised by the materials used as electrolytes, e.g. mixed inorganic/organic electrolytes the electrolyte being constituted of organic materials only
- H01M10/0566—Liquid materials
- H01M10/0569—Liquid materials characterised by the solvents
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- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M4/00—Electrodes
- H01M4/02—Electrodes composed of, or comprising, active material
- H01M4/13—Electrodes for accumulators with non-aqueous electrolyte, e.g. for lithium-accumulators; Processes of manufacture thereof
- H01M4/131—Electrodes based on mixed oxides or hydroxides, or on mixtures of oxides or hydroxides, e.g. LiCoOx
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- H—ELECTRICITY
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- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M4/00—Electrodes
- H01M4/02—Electrodes composed of, or comprising, active material
- H01M4/13—Electrodes for accumulators with non-aqueous electrolyte, e.g. for lithium-accumulators; Processes of manufacture thereof
- H01M4/133—Electrodes based on carbonaceous material, e.g. graphite-intercalation compounds or CFx
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M4/00—Electrodes
- H01M4/02—Electrodes composed of, or comprising, active material
- H01M4/36—Selection of substances as active materials, active masses, active liquids
- H01M4/48—Selection of substances as active materials, active masses, active liquids of inorganic oxides or hydroxides
- H01M4/50—Selection of substances as active materials, active masses, active liquids of inorganic oxides or hydroxides of manganese
- H01M4/505—Selection of substances as active materials, active masses, active liquids of inorganic oxides or hydroxides of manganese of mixed oxides or hydroxides containing manganese for inserting or intercalating light metals, e.g. LiMn2O4 or LiMn2OxFy
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- H—ELECTRICITY
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- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
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- H01M4/02—Electrodes composed of, or comprising, active material
- H01M4/36—Selection of substances as active materials, active masses, active liquids
- H01M4/48—Selection of substances as active materials, active masses, active liquids of inorganic oxides or hydroxides
- H01M4/52—Selection of substances as active materials, active masses, active liquids of inorganic oxides or hydroxides of nickel, cobalt or iron
- H01M4/525—Selection of substances as active materials, active masses, active liquids of inorganic oxides or hydroxides of nickel, cobalt or iron of mixed oxides or hydroxides containing iron, cobalt or nickel for inserting or intercalating light metals, e.g. LiNiO2, LiCoO2 or LiCoOxFy
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- H—ELECTRICITY
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- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M4/00—Electrodes
- H01M4/02—Electrodes composed of, or comprising, active material
- H01M4/36—Selection of substances as active materials, active masses, active liquids
- H01M4/58—Selection of substances as active materials, active masses, active liquids of inorganic compounds other than oxides or hydroxides, e.g. sulfides, selenides, tellurides, halogenides or LiCoFy; of polyanionic structures, e.g. phosphates, silicates or borates
- H01M4/5825—Oxygenated metallic salts or polyanionic structures, e.g. borates, phosphates, silicates, olivines
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- H—ELECTRICITY
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- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
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- H01M4/02—Electrodes composed of, or comprising, active material
- H01M4/36—Selection of substances as active materials, active masses, active liquids
- H01M4/58—Selection of substances as active materials, active masses, active liquids of inorganic compounds other than oxides or hydroxides, e.g. sulfides, selenides, tellurides, halogenides or LiCoFy; of polyanionic structures, e.g. phosphates, silicates or borates
- H01M4/583—Carbonaceous material, e.g. graphite-intercalation compounds or CFx
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- H—ELECTRICITY
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- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M4/00—Electrodes
- H01M4/02—Electrodes composed of, or comprising, active material
- H01M4/36—Selection of substances as active materials, active masses, active liquids
- H01M4/58—Selection of substances as active materials, active masses, active liquids of inorganic compounds other than oxides or hydroxides, e.g. sulfides, selenides, tellurides, halogenides or LiCoFy; of polyanionic structures, e.g. phosphates, silicates or borates
- H01M4/583—Carbonaceous material, e.g. graphite-intercalation compounds or CFx
- H01M4/587—Carbonaceous material, e.g. graphite-intercalation compounds or CFx for inserting or intercalating light metals
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- C—CHEMISTRY; METALLURGY
- C01—INORGANIC CHEMISTRY
- C01P—INDEXING SCHEME RELATING TO STRUCTURAL AND PHYSICAL ASPECTS OF SOLID INORGANIC COMPOUNDS
- C01P2004/00—Particle morphology
- C01P2004/60—Particles characterised by their size
- C01P2004/61—Micrometer sized, i.e. from 1-100 micrometer
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- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M4/00—Electrodes
- H01M4/02—Electrodes composed of, or comprising, active material
- H01M2004/021—Physical characteristics, e.g. porosity, surface area
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- H01M4/00—Electrodes
- H01M4/02—Electrodes composed of, or comprising, active material
- H01M2004/026—Electrodes composed of, or comprising, active material characterised by the polarity
- H01M2004/027—Negative electrodes
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M4/00—Electrodes
- H01M4/02—Electrodes composed of, or comprising, active material
- H01M2004/026—Electrodes composed of, or comprising, active material characterised by the polarity
- H01M2004/028—Positive electrodes
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- H—ELECTRICITY
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- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M2220/00—Batteries for particular applications
- H01M2220/30—Batteries in portable systems, e.g. mobile phone, laptop
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M2300/00—Electrolytes
- H01M2300/0017—Non-aqueous electrolytes
- H01M2300/0025—Organic electrolyte
- H01M2300/0028—Organic electrolyte characterised by the solvent
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02E—REDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
- Y02E60/00—Enabling technologies; Technologies with a potential or indirect contribution to GHG emissions mitigation
- Y02E60/10—Energy storage using batteries
Definitions
- the present invention relates to the field of battery, and particularly relates to a lithium-ion secondary battery.
- a passivation layer (known as solid electrolyte interface membrane, SEI membrane) coated on a surface of a negative active material is usually damaged during a large-rate charging and discharging process of the battery, and then a repair process of the SEI membrane will continually decrease the mass of the electrolyte inside the battery, which seriously affects the cycle life of the battery.
- intrinsic parameters of the electrolyte also affect the rate performance of the battery.
- an object of the present invention is to provide a lithium-ion secondary battery, which can make the lithium-ion secondary battery have good dynamics performance and longer cycle life at the same time.
- the present invention provides a lithium-ion secondary battery, which comprises a positive electrode plate, a negative electrode plate, a separator and an electrolyte, the electrolyte comprises a lithium salt and an organic solvent.
- the positive electrode plate comprises a positive current collector and a positive film, the positive film is provided on at least one surface of the positive current collector and comprises a positive active material, the positive active material comprises one or more selected from a group consisting of Li x Ni a Co b M c O 2 and a doping and/or coating modified compound thereof, M is one or two selected from a group consisting of Mn and Al, 0.95 ⁇ x ⁇ 1.2, 0 ⁇ a ⁇ 1, 0 ⁇ b ⁇ 1, 0 ⁇ c ⁇ 1.
- the lithium-ion secondary battery satisfies a relationship: 2.13 ⁇ (m ⁇ C)/( ⁇ Cap) ⁇ 3.0, wherein m represents a total mass of the electrolyte inside the formated battery with a unit of g, p represents a density of the electrolyte with a unit of g/cm 3 , C represents a concentration of the lithium salt in the electrolyte with a unit of mol/L, Cap represents a rated capacity of the battery with a unit of Ah, according to the independent claim 1. More preferably, the lithium-ion secondary battery satisfies a relationship: 2.13 ⁇ (m ⁇ C)/( ⁇ Cap) ⁇ 2.63.
- a+b+c 1.
- the negative electrode plate comprises a negative current collector and a negative film, the negative film is provided on at least one surface of the negative current collector and comprises a negative active material, the negative active material at least comprises graphite.
- the density of the electrolyte represented by ⁇ is 1.0 g/cm 3 ⁇ 1.3 g/cm 3 .
- the density of the electrolyte represented by ⁇ is 1.1 g/cm 3 ⁇ 1.25 g/cm 3 .
- the concentration of the lithium salt in the electrolyte represented by C is 0.6 mol/L ⁇ 1.2 mol/L.
- concentration of the lithium salt in the electrolyte represented by C is 0.8 mol/L ⁇ 1.17 mol/L.
- m/Cap is 2 g/Ah ⁇ 6 g/Ah.
- m/Cap is 2 g/Ah ⁇ 3.0 g/Ah.
- a pressing density of the positive film is 3.3 g/cm 3 ⁇ 3.55 g/cm 3 .
- the pressing density of the positive film is 3.35 g/cm 3 ⁇ 3.5 g/cm 3 .
- a coating weight per unit area on one surface of the negative film represented by CW is 0.006 g/cm 2 ⁇ 0.012 g/cm 2 .
- the coating weight per unit area on one surface of the negative film represented by CW is 0.007 g/cm 2 ⁇ 0.009 g/cm 2 .
- An OI value of the negative film represented by Voi is 11-30.
- the OI value of the negative film represented by Voi is 14 ⁇ 30. More preferably, the OI value of the negative film represented by Voi is 16-30.
- a pressing density of the negative film is 1.0 g/cm 3 ⁇ 1.6 g/cm 3 .
- the pressing density of the negative film is 1.4 g/cm 3 ⁇ 1.6 g/cm 3 .
- An average particle diameter of the negative active material represented by D50 is 4 ⁇ m ⁇ 15 ⁇ m.
- the average particle diameter of the negative active material represented by D50 is 6 ⁇ m ⁇ 12 ⁇ m.
- a porosity of the positive film is 20% ⁇ 40%. Preferably, the porosity of the positive film is 30% ⁇ 40%.
- the present invention at least includes the following beneficial effects: in the present invention, by comprehensively considering the rated capacity of the battery, the mass of the electrolyte and the intrinsic parameters of the electrolyte and reasonably quantifying the relationship thereof, the lithium-ion secondary battery can have good dynamics performance and longer cycle life at the same time.
- the lithium-ion secondary battery of the present invention comprises a positive electrode plate, a negative electrode plate, a separator and an electrolyte, the electrolyte comprises a lithium salt and an organic solvent.
- the lithium-ion secondary battery satisfies a relationship: 2.13 ⁇ (m ⁇ C)/( ⁇ Cap) ⁇ 3.0, m represents a total mass of the electrolyte inside the formated battery with a unit of g, ⁇ represents a density of the electrolyte with a unit of g/cm 3 , C represents a concentration of the lithium salt in the electrolyte with a unit of mol/L, Cap represents a rated capacity of the battery with a unit of Ah.
- the obtained discharge capacity is the rated capacity of the battery represented by Cap, and I 1 represents one hour rate discharge current.
- the specific test method may refer to GB/T 31484-2015 cycle life requirements and test methods for traction battery of electric vehicles.
- the lithium ions are deintercalated from the positive active material and then intercalated into the negative active material during the charging process of the battery, and the negative active material easily expands during the charging process to result in a damage to the SEI membrane on the surface of the negative active material, and the damage to the SEI membrane speeds up especially when the battery is charged under a large rate and a fast speed.
- the repair of the SEI membrane needs to speed up, which requires that there is still enough electrolyte in the finally prepared battery.
- the amount of the electrolyte inside the finally prepared battery is not the more the better, and the more the amount of the electrolyte is, the less the free volume inside the battery is, the larger the internal pressure of the battery is when the same amount of gas is generated in the battery, the vent or the weak point on the case of the battery is more prone to burst early during the cycle process of the battery, thereby resulting in failure of the battery.
- the excessive electrolyte inside the battery will make the gas production of the battery be too large, a large amount of bubbled dark spots are prone to form on the surface of the negative electrode plate, thereby deteriorating the cycle performance and the dynamics performance of the battery.
- the lithium salt in the electrolyte is the transmission unit of the lithium ions, the value of the concentration of the lithium salt in the electrolyte directly affects the transmission speed of the lithium ions, and the transmission speed of the lithium ions in turn affects the potential of the negative electrode plate.
- the transmission speed of the lithium ions needs to be as high as possible so as to prevent the lithium dendrite from forming due to too fast decrease of the potential of the negative electrode plate and in turn bringing safety hazard to the battery, and also prevent the capacity of the battery from decaying too fast during the cycle process.
- the concentration of the lithium salt in the electrolyte may be too small or the density of the organic solvent may be too small. If the concentration of the lithium salt in the electrolyte is too small, there are not enough transmission units of the lithium ions inside the battery, the potential of the negative electrode plate decreases too fast when the battery is charged under a large rate, therefore the lithium dendrite is easily formed on the surface of the negative electrode plate to consume the reversible active lithium; and moreover, the lithium dendrite with the continual growth may also puncture the separator to make the positive electrode plate and the negative electrode plate short-circuited and bring safety hazard to the battery.
- the lithium salt with a too low concentration will also make the SEI membrane on the negative electrode plate be not stable, therefore the SEI membrane is easily decomposed and then repaired to form into a secondary SEI membrane, and the decomposition of the secondary SEI membrane is more serious under a high temperature; and moreover, a large amount of heat is generated during the decomposition process and the repair process of the SEI membrane, which deteriorates the surface of the negative electrode plate and further deteriorates the cycle performance of the battery.
- the density of the organic solvent is too small, a dielectric constant of the electrolyte is lower, which may increase the transmission resistance of the lithium ions.
- the concentration of the lithium salt in the electrolyte may be too large or the density of the organic solvent may be too large, because the lithium salt is easily decomposed to generate heat under a high temperature, the lithium salt with a larger concentration will aggravate the heat generation inside the battery, and there is easily failure of the battery.
- the density of the electrolyte is too large, the viscosity of the electrolyte is prone to be too large, the transmission resistance of the lithium ions increases, thereby affecting the dynamics performance of the battery; and moreover, when the density of the electrolyte is too large, the polarization of the battery is prone to increase, thereby deteriorating the cycle performance of the battery.
- the lithium-ion secondary battery When the lithium-ion secondary battery is designed, the applicant has comprehensively considered all the factors above and has done a large number of researches, finally the applicant found that when the lithium-ion secondary battery satisfies a relationship 2.13 ⁇ (m ⁇ C)/( ⁇ Cap) ⁇ 3.0, the lithium-ion secondary can have good dynamics performance and longer cycle life at the same time.
- the concentration of the lithium salt in the electrolyte represented by C is too small, there are not enough transmission units of the lithium ions inside the battery, the potential of the negative electrode plate decreases too fast when the battery is charged under a large rate, therefore the lithium dendrite is easily formed on the surface of the negative electrode plate to consume the reversible active lithium; and moreover, the lithium dendrite with the continual growth may also puncture the separator to make the positive electrode plate and the negative electrode plate short-circuited and bring safety hazard to the battery.
- the lithium salt with a too low concentration C will also make the SEI membrane on the negative electrode plate be not stable, therefore the SEI membrane is easily decomposed and then repaired to form into a secondary SEI membrane, and the decomposition of the secondary SEI membrane is more serious under a high temperature; and moreover, a large amount of heat is generated during the decomposition process and the repair process of the SEI membrane, which deteriorates the surface of the negative electrode plate and further deteriorates the cycle performance of the battery.
- the concentration of the lithium salt represented by C is too large, the lithium salt is easily decomposed to generate heat under a high temperature, which aggravates the heat generation inside the battery, thereby resulting in failure of the battery.
- the density of the electrolyte represented by ⁇ is 1.0 g/cm 3 ⁇ 1.3 g/cm 3 . More preferably, the density of the electrolyte represented by ⁇ is 1.1 g/cm 3 ⁇ 1.25 g/cm 3 .
- the concentration of the lithium salt in the electrolyte represented by C is 0.6 mol/L ⁇ 1.2 mol/L. More preferably, the concentration of the lithium salt in the electrolyte represented by C is 0.8 mol/L ⁇ 1.17 mol/L.
- m/Cap is 2 g/Ah ⁇ 6 g/Ah. More preferably, m/Cap is 2.3 g/Ah ⁇ 5.8 g/Ah.
- the positive electrode plate comprises a positive current collector and a positive film
- the positive film is provided on at least one surface of the positive current collector and comprises a positive active material, a conductive agent and a binder.
- the types and the contents of the conductive agent and the binder are not specifically limited and may be selected based on actual demands.
- the type of the positive current collector is not specifically limited and may be selected based on actual demands, for example, the positive current collector may be an aluminum foil, a nickel foil or a polymer conductive film, and preferably, the positive current collector is the aluminum foil.
- the doping element may be a cation, an anion or complex ions of an anion and a cation, the purpose of the doping modification is to dope some cations, anions or complex ions into the crystal lattice of the positive active material, it is beneficial for reducing the first cycle irreversible capacity, making the integrity of the crystal structure of the positive active material more complete, making the stability of the crystal structure of the positive active material higher, and making the probability of particle break and the probability of crystal structure damage lower, in turn it is beneficial for improving the cycle performance and thermal stability of the battery.
- the specific method of the doping modification is not limited, for example, a wet doping may be used in the coprecipitation stage of the precursor, or a dry doping may be used in the sintering stage.
- the element used in the cation doping may be one or more selected from a group consisting of Al, Zr, Ti, B, Mg, V, Cr, Zn and Y; the element used in the anion doping may be one or more selected from a group consisting of F, P and S, F is more preferable.
- a total doping amount of the cations and the anions is not more than 20%.
- the coating layer functions to separate the electrolyte and the positive active material so as to reduce the side reactions between the electrolyte and the positive active material to a large extent, reduce the dissolution of the transition metals inside the positive active material, and improve the electrochemical stability of the positive active material.
- the coating layer may be a carbon layer, a graphene layer, an oxide layer, an inorganic salt layer or a conductive polymer layer.
- the oxide may be an oxide formed from one or more selected from a group consisting of Al, Ti, Mn, Zr, Mg, Zn, Ba, Mo and B;
- the inorganic salt may be one or more selected from a group consisting of Li 2 ZrO 3 , LiNbO 3 , Li 4 Ti 5 O 12 , Li 2 TiO 3 , Li 3 VO 4 , LiSnO 3 , Li 2 SiO 3 and LiAlO 2 ;
- the conductive polymer may be polypyrrole (PPy), poly(3,4-ethylenedioxythiophene) (PEDOT) or polyamide (PI).
- a mass of the coating layer is not more than 20%.
- Li x Ni a Co b M c O 2 may be one or more specifically selected from a group consisting of LiNi 1/3 Co 1/3 Mn 1/3 O 2 (NCM333), LiNi 0.5 Co 0.2 Mn 0.3 O 2 (NCM523), LiNi 0.6 Co 0.2 Mn 0.2 O 2 (NCM622), LiNi 0.8 Co 0.1 Mn 0.1 O 2 (NCM811), LiNi 0.8 Co 0.1 Al 0.1 O 2 and LiNi 0.85 Co 0.15 Al 0.05 O 2 .
- NCM333 LiNi 1/3 Co 1/3 Mn 1/3 O 2
- NCM523 LiNi 0.5 Co 0.2 Mn 0.3 O 2
- NCM622 LiNi 0.6 Co 0.2 Mn 0.2 O 2
- NCM811 LiNi 0.8 Co 0.1 Mn 0.1 O 2
- LiNi 0.8 Co 0.1 Al 0.1 O 2 LiNi 0.85 Co 0.15 Al 0.05 O 2 .
- the negative electrode plate comprises a negative current collector and a negative film
- the negative film is provided on at least one surface of the negative current collector and comprises a negative active material, a conductive agent and a binder.
- the types and the contents of the conductive agent and the binder are not specifically limited and may be selected based on actual demands.
- the type of the negative current collector is not specifically limited and may be selected based on actual demands, for example, the negative current collector may be a copper foil, a carbon coated copper foil or a polymer conductive film, and preferably, the negative current collector is the copper foil
- the negative active material may be one or more selected from a group consisting of graphite, soft carbon, hard carbon, carbon fiber, mesocarbon microbeads, silicon-based material, tin-based material and lithium titanate.
- the graphite is artificial graphite, natural graphite or a mixture thereof;
- the silicon-based material may be one or more selected from a group consisting of elemental silicon, silicon oxide, silicon carbon composite and silicon alloy;
- the tin-based material is one or more selected from a group consisting of elemental tin, tin oxide compound and tin alloy.
- the negative active material at least comprises graphite, and the lithium-ion secondary battery further satisfies a relationship: 0.01 ⁇ CW ⁇ V OI ⁇ 0.25.
- CW represents a coating weight per unit area on one surface of the negative film with a unit of g/cm 2 ;
- Voi represents an OI value of the negative film.
- the coating weight per unit area on one surface of the negative film represented by CW is 0.003 g/cm 2 ⁇ 0.015 g/cm 2 . More preferably, the coating weight per unit area on one surface of the negative film represented by CW is 0.006 g/cm 2 ⁇ 0.012 g/cm 2 .
- the OI value of the negative film represented by Voi is 3 ⁇ 40. More preferably, the OI value of the negative film represented by Voi is 5 ⁇ 30.
- the coating weight per unit area on one surface of the negative film represented by CW is too small, the energy density of the battery is directly affected, and it is also more difficult to control the coating process of the negative slurry.
- the smaller the OI value of the negative film represented by Voi the more beneficial for the transmission of the lithium ions is, but exfoliation of the negative film is prone to occur when the OI value of the negative film represented by Voi is too small. Therefore when both the coating weight per unit area on one surface of the negative film and the OI value of the negative film fall within the above preferred ranges thereof, the battery may have better dynamics performance and higher energy density at the same time.
- an OI value of a powder of the negative active material and a particle diameter of the negative active material both will affect the OI value of the negative film, therefore the OI value of the negative film can be adjusted by selecting an appropriate negative active material.
- the OI value of the powder of the negative active material represented by Goi is 2 ⁇ 15. More preferably, the OI value of the powder of the negative active material represented by Goi is 2 ⁇ 11.
- the negative active material can have better isotropy, which is more beneficial for the deintercalation and the intercalation of the lithium ions.
- a certain mass of the powder of the negative active material may be directly placed in the X-ray powder diffractometer during the test process.
- the average particle diameter of the negative active material represented by D50 is 1 ⁇ m ⁇ 25 ⁇ m. More preferably, the average particle diameter of the negative active material represented by D50 is 4 ⁇ m ⁇ 15 ⁇ m. Further more preferably, the average particle diameter of the negative active material represented by D50 is 6 ⁇ m ⁇ 12 ⁇ m.
- the negative film can have better homogeneity, thereby avoiding the negative active material with too small particle diameter from affecting the performances of the battery by generating more side reactions with the electrolyte, and also avoiding the negative active material with too large particle diameter from affecting the performances of the battery by hindering the transmission of the lithium ions inside the negative active material.
- Cold pressing parameters (such as cold pressing speed, cold pressing temperature, cold pressing pressure, cold pressing times and the like) of the negative electrode plate will also affect the orientation degree of the stacked negative active material particles in the negative film and in turn affect the OI value of the negative film, therefore the OI value of the negative film can also be adjusted by controlling the cold pressing parameters of the negative electrode plate.
- a pressing density of the negative film is 0.8 g/cm 3 ⁇ 2.0 g/cm 3 . More preferably, the pressing density of the negative film is 1.0 g/cm 3 ⁇ 1.6 g/cm 3 . Further more preferably, the pressing density of the negative film is 1.4 g/cm 3 ⁇ 1.6 g/cm 3 . When the pressing density of the negative film falls within the above preferred ranges thereof, the integrity of the negative active material particle is higher, and the electrical contact between the negative active material particles is better.
- the OI value of the negative film can also be adjusted by using magnetic field inducing technique during the coating process of the negative slurry.
- the direction of the magnetic field and the value of the magnetic field can be reasonably adjusted according to the required OI value of the negative film.
- the type of the separator is not specifically limited, and the separator may be any separator used in existing batteries, for example, the separator may be a polyethylene membrane, polypropylene membrane, a polyvinylidene fluoride membrane and a multilayer composite membrane thereof, but the present invention is not limited thereto.
- the specific types and the specific components of the lithium salt and the organic solvent are not specifically limited and may be selected based on actual demands.
- the lithium salt may be one or more selected from a group consisting of lithium hexafluorophosphate, lithium tetrafluoroborate, lithium perchlorate, lithium hexafluoroarsenate, lithium tetrafluoro(oxalato)phosphate, LiN(SO 2 R F ) 2 , LiN(SO 2 F)(SO 2 R F ), lithium bis(trifluoromethanesulfonyl)imide, lithium bis(fluorosulfonyl)imide, lithium bis(oxalato)borate and lithium difluoro(oxalato)borate, the substituent R F is characterized by C n F 2n+1 , n is integer of 1 ⁇ 10.
- the organic solvent may comprise one or more selected from a group consisting of cyclic carbonate, chain carbonate and carboxylic ester.
- the cyclic carbonate may be one or more selected from a group consisting of ethylene carbonate, propylene carbonate, butylene carbonate and ⁇ -butyrolactone;
- the chain carbonate may be one or more selected from a group consisting of dimethly carbonate, diethyl carbonate, ethyl methyl carbonate and ethyl propyl carbonate;
- the carboxylic ester may be one or more selected from a group consisting of methyl formate, ethyl formate, methyl acetate, ethyl acetate, propyl propionate, ethyl butyrate, ethyl propionate and propyl butyrate.
- the electrolyte may further comprise functional additives, such as vinylene carbonate, ethylene sulfate, propane sultone, fluoroethylene
- the mass of the electrolyte consumed in the formation process is 0.1 g/Ah ⁇ 0.3 g/Ah.
- a rated capacity of the electrode assembly represented by Cap was 50 Ah.
- LiNi 0.5 Co 0.2 Mn 0.3 O 2 positive active material
- acetylene black conductive agent
- PVDF binder
- NMP solvent
- the positive slurry was uniformly coated on aluminum foil (positive current collector)
- drying was then performed under room temperature and continual drying was performed in an oven, which was then followed by cold pressing and plate cutting, finally the positive electrode plate was obtained.
- a pressing density of the positive film was 4.0 g/cm 3 , a porosity of the positive film was 12%.
- Graphite (negative active material), acetylene black (conductive agent), CMC (thickening agent) and SBR (binder) according to a mass ratio of 96.4:1:1.2:1.4 were uniformly mixed with deionized water (solvent), which then became homogeneous under stirring via a vacuum mixer, a negative slurry was obtained; then the negative slurry was uniformly coated on copper foil (negative current collector), a coating weight per unit area on one surface was 0.011 g/cm 2 , drying was then performed under room temperature and continual drying was performed in an oven, which was then followed by cold pressing and plate cutting, finally the negative electrode plate was obtained.
- An OI value of the negative film was 25.
- the positive electrode plate, the separator (polyethylene membrane) and the negative electrode plate were laminated in order, the separator was positioned between the positive electrode plate and the negative electrode plate so as to separate the positive electrode plate from the negative electrode plate, then the positive electrode plate, the separator and the negative electrode plate were wound together to form an electrode assembly.
- Ethylene carbonate, ethyl methyl carbonate and diethyl carbonate according to a volume ratio of 1:1:1 were mixed together to obtain an organic solvent, then sufficiently dried LiPF 6 was dissolved into the mixed organic solvent to obtain an electrolyte, a concentration of the electrolyte represented by C was 0.8 mol/L, a density of the electrolyte represented by ⁇ was 1.1 g/cm 3 .
- the electrode assembly was put into a case, which was followed by baking, injecting 112 g electrolyte, vacuum packaging, standby, formation (the mass of the electrolyte consumed in the formation process was 0.15 g/Ah), shaping and the like, finally a lithium-ion secondary battery was obtained.
- examples 2-9 were the same as that in example 1, and the specific differences were shown in Table 1. And in the preparation of the negative electrode plate, after an appropriate negative active material was selected, the negative film having different OI values could be obtained by reasonably adjusting the cold pressing parameters or additionally using the magnetic field inducing technique, the direction of the magnetic field and the value of the magnetic field could be reasonably adjusted according to the required OI value.
- the lithium-ion secondary batteries prepared in the examples and the comparative examples were fully charged at a constant current of 4 C and fully discharged at a constant current of 1 C for 10 cycles, then the lithium-ion secondary batteries were fully charged at a constant current of 4 C, then the negative electrode plates were disassembled from the lithium-ion secondary batteries, and the lithium precipitation on the surface of each negative electrode plate was observed.
- the lithium-precipitation area of less than 5% was considered to be slight lithium precipitation
- the lithium-precipitation area of 5% to 40% was considered to be moderate lithium precipitation
- the lithium-precipitation area of more than 40% was considered to be serious lithium precipitation.
- the lithium-ion secondary batteries prepared in the examples and the comparative examples were charged at a constant current of 3 C and discharged at a constant current of 1 C, the fully charging and discharging process was repeated until the capacity of the lithium-ion secondary battery decayed to 80% of the initial capacity, and the cycle number of the lithium-ion secondary battery was recorded.
- Table 1 illustrated the parameters of examples 1-9.
- Table 2 illustrated the test results of examples 1-9.
- the lithium-ion secondary battery of the present invention was designed, by comprehensively considering the rated capacity of the battery, the mass of the electrolyte inside the formated battery and the intrinsic parameters of the electrolyte, the lithium-ion secondary battery could have good dynamics performance and longer cycle life at the same time.
- the positive active material used in all examples 1-9 was NCM523, including inventive and comparative examples.
- inventive examples 3-5 the lithium-ion secondary battery satisfied a relationship 2.13 ⁇ (m ⁇ C)/( ⁇ > Cap) ⁇ 3.0, the lithium-ion secondary battery had good dynamics performance and longer cycle life at the same time.
- the injected electrolyte was too much or the concentration of the lithium salt in the electrolyte was larger to make the value of (m ⁇ C)/( ⁇ Cap) be larger, both the dynamics performance and the cycle life of the lithium-ion secondary battery were very bad.
- the concentration of the lithium salt was larger, the lithium salt was more easily decomposed to generate heat under a high temperature, which also aggravated the heat generation inside the battery, thereby also resulting in failure of the battery during the cycle process; and moreover, the viscosity of the electrolyte was also larger, the transmission resistance of the lithium ions increased, thereby also affecting the dynamics performance of the battery.
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Description
- The present invention relates to the field of battery, and particularly relates to a lithium-ion secondary battery.
- With the development of portable electronic products and new energy automotives, people have higher requirements on charging speed and service life of the portable electronic products and the new energy automotives, therefore a battery used thereof is required to have better rate performance and longer cycle life without compromising the capacity of the battery.
- However, a passivation layer (known as solid electrolyte interface membrane, SEI membrane) coated on a surface of a negative active material is usually damaged during a large-rate charging and discharging process of the battery, and then a repair process of the SEI membrane will continually decrease the mass of the electrolyte inside the battery, which seriously affects the cycle life of the battery. Moreover, intrinsic parameters of the electrolyte also affect the rate performance of the battery.
- Related technologies are known from
US 2006/269844 A1 ,US 2009/258296 A1 ,US 2014/227588 A1 ,US 2008/182170 A1 and .JP 6 208 560 B2 - In view of the problem existing in the background, an object of the present invention is to provide a lithium-ion secondary battery, which can make the lithium-ion secondary battery have good dynamics performance and longer cycle life at the same time.
- In order to achieve the above object, the present invention provides a lithium-ion secondary battery, which comprises a positive electrode plate, a negative electrode plate, a separator and an electrolyte, the electrolyte comprises a lithium salt and an organic solvent.
- The positive electrode plate comprises a positive current collector and a positive film, the positive film is provided on at least one surface of the positive current collector and comprises a positive active material, the positive active material comprises one or more selected from a group consisting of LixNiaCobMcO2 and a doping and/or coating modified compound thereof, M is one or two selected from a group consisting of Mn and Al, 0.95≤x≤1.2, 0<a<1, 0<b<1, 0<c<1. The lithium-ion secondary battery satisfies a relationship: 2.13≤(m×C)/(ρ×Cap)≤3.0, wherein m represents a total mass of the electrolyte inside the formated battery with a unit of g, p represents a density of the electrolyte with a unit of g/cm3, C represents a concentration of the lithium salt in the electrolyte with a unit of mol/L, Cap represents a rated capacity of the battery with a unit of Ah, according to the independent claim 1. More preferably, the lithium-ion secondary battery satisfies a relationship: 2.13≤(m×C)/(ρ×Cap)≤2.63.
- Preferably, a+b+c=1.
- The negative electrode plate comprises a negative current collector and a negative film, the negative film is provided on at least one surface of the negative current collector and comprises a negative active material, the negative active material at least comprises graphite.
- The density of the electrolyte represented by ρ is 1.0 g/cm3~1.3 g/cm3. Preferably, the density of the electrolyte represented by ρ is 1.1 g/cm3~1.25 g/cm3.
- The concentration of the lithium salt in the electrolyte represented by C is 0.6 mol/L~1.2 mol/L. Preferably, the concentration of the lithium salt in the electrolyte represented by C is 0.8 mol/L~1.17 mol/L.
- m/Cap is 2 g/Ah~6 g/Ah. Preferably, m/Cap is 2 g/Ah~3.0 g/Ah.
- A pressing density of the positive film is 3.3 g/cm3~3.55 g/cm3. Preferably, the pressing density of the positive film is 3.35 g/cm3~3.5 g/cm3.
- A coating weight per unit area on one surface of the negative film represented by CW is 0.006 g/cm2~0.012 g/cm2. Preferably, the coating weight per unit area on one surface of the negative film represented by CW is 0.007 g/cm2~0.009 g/cm2.
- An OI value of the negative film represented by Voi is 11-30. Preferably, the OI value of the negative film represented by Voi is 14∼30. More preferably, the OI value of the negative film represented by Voi is 16-30.
- A pressing density of the negative film is 1.0 g/cm3~1.6 g/cm3. Preferably, the pressing density of the negative film is 1.4 g/cm3~1.6 g/cm3.
- An average particle diameter of the negative active material represented by D50 is 4 µm~15 µm. Preferably, the average particle diameter of the negative active material represented by D50 is 6 µm~12 µm.
- A porosity of the positive film is 20%~40%. Preferably, the porosity of the positive film is 30%∼40%.
- Compared with the existing technologies, the present invention at least includes the following beneficial effects: in the present invention, by comprehensively considering the rated capacity of the battery, the mass of the electrolyte and the intrinsic parameters of the electrolyte and reasonably quantifying the relationship thereof, the lithium-ion secondary battery can have good dynamics performance and longer cycle life at the same time.
- Hereinafter a lithium-ion secondary battery according to the present invention is described in detail.
- The lithium-ion secondary battery of the present invention comprises a positive electrode plate, a negative electrode plate, a separator and an electrolyte, the electrolyte comprises a lithium salt and an organic solvent. The lithium-ion secondary battery satisfies a relationship: 2.13≤(m×C)/(ρ×Cap)≤3.0, m represents a total mass of the electrolyte inside the formated battery with a unit of g, ρ represents a density of the electrolyte with a unit of g/cm3, C represents a concentration of the lithium salt in the electrolyte with a unit of mol/L, Cap represents a rated capacity of the battery with a unit of Ah.
- It should be noted that, when a fully charged battery is discharged to a cut-off discharge voltage at room temperature and at a current of 1 I1 (A), the obtained discharge capacity is the rated capacity of the battery represented by Cap, and I1 represents one hour rate discharge current. The specific test method may refer to GB/T 31484-2015 cycle life requirements and test methods for traction battery of electric vehicles.
- The lithium ions are deintercalated from the positive active material and then intercalated into the negative active material during the charging process of the battery, and the negative active material easily expands during the charging process to result in a damage to the SEI membrane on the surface of the negative active material, and the damage to the SEI membrane speeds up especially when the battery is charged under a large rate and a fast speed. In order to make the battery have longer cycle life, the repair of the SEI membrane needs to speed up, which requires that there is still enough electrolyte in the finally prepared battery. However, the amount of the electrolyte inside the finally prepared battery is not the more the better, and the more the amount of the electrolyte is, the less the free volume inside the battery is, the larger the internal pressure of the battery is when the same amount of gas is generated in the battery, the vent or the weak point on the case of the battery is more prone to burst early during the cycle process of the battery, thereby resulting in failure of the battery. Furthermore, the excessive electrolyte inside the battery will make the gas production of the battery be too large, a large amount of bubbled dark spots are prone to form on the surface of the negative electrode plate, thereby deteriorating the cycle performance and the dynamics performance of the battery.
- The lithium salt in the electrolyte is the transmission unit of the lithium ions, the value of the concentration of the lithium salt in the electrolyte directly affects the transmission speed of the lithium ions, and the transmission speed of the lithium ions in turn affects the potential of the negative electrode plate. When the battery is charged under a fast speed, the transmission speed of the lithium ions needs to be as high as possible so as to prevent the lithium dendrite from forming due to too fast decrease of the potential of the negative electrode plate and in turn bringing safety hazard to the battery, and also prevent the capacity of the battery from decaying too fast during the cycle process.
- When the density of the electrolyte is too small, the concentration of the lithium salt in the electrolyte may be too small or the density of the organic solvent may be too small. If the concentration of the lithium salt in the electrolyte is too small, there are not enough transmission units of the lithium ions inside the battery, the potential of the negative electrode plate decreases too fast when the battery is charged under a large rate, therefore the lithium dendrite is easily formed on the surface of the negative electrode plate to consume the reversible active lithium; and moreover, the lithium dendrite with the continual growth may also puncture the separator to make the positive electrode plate and the negative electrode plate short-circuited and bring safety hazard to the battery. The lithium salt with a too low concentration will also make the SEI membrane on the negative electrode plate be not stable, therefore the SEI membrane is easily decomposed and then repaired to form into a secondary SEI membrane, and the decomposition of the secondary SEI membrane is more serious under a high temperature; and moreover, a large amount of heat is generated during the decomposition process and the repair process of the SEI membrane, which deteriorates the surface of the negative electrode plate and further deteriorates the cycle performance of the battery. When the density of the organic solvent is too small, a dielectric constant of the electrolyte is lower, which may increase the transmission resistance of the lithium ions.
- When the density of the electrolyte is too large, the concentration of the lithium salt in the electrolyte may be too large or the density of the organic solvent may be too large, because the lithium salt is easily decomposed to generate heat under a high temperature, the lithium salt with a larger concentration will aggravate the heat generation inside the battery, and there is easily failure of the battery. When the density of the electrolyte is too large, the viscosity of the electrolyte is prone to be too large, the transmission resistance of the lithium ions increases, thereby affecting the dynamics performance of the battery; and moreover, when the density of the electrolyte is too large, the polarization of the battery is prone to increase, thereby deteriorating the cycle performance of the battery.
- When the lithium-ion secondary battery is designed, the applicant has comprehensively considered all the factors above and has done a large number of researches, finally the applicant found that when the lithium-ion secondary battery satisfies a relationship 2.13≤(m×C)/(ρ×Cap)≤3.0, the lithium-ion secondary can have good dynamics performance and longer cycle life at the same time.
- When the value of (m×C)/(ρ×Cap) is less than 2.13, the total mass of the electrolyte inside the formated battery represented by m is too small or the concentration of the lithium salt in the electrolyte represented by C is too small, both the long-term cycle performance and the dynamics performance of the battery are significantly affected. When the total mass of the electrolyte inside the formated battery represented by m is too small, there will be not enough electrolyte to be consumed during the long-term cycle process, the stability and the compactness of the SEI membrane on the surface of the negative active material are bad, the dynamics performance of the battery is decreased, and the cycle performance of the battery is also deteriorated. When the concentration of the lithium salt in the electrolyte represented by C is too small, there are not enough transmission units of the lithium ions inside the battery, the potential of the negative electrode plate decreases too fast when the battery is charged under a large rate, therefore the lithium dendrite is easily formed on the surface of the negative electrode plate to consume the reversible active lithium; and moreover, the lithium dendrite with the continual growth may also puncture the separator to make the positive electrode plate and the negative electrode plate short-circuited and bring safety hazard to the battery. The lithium salt with a too low concentration C will also make the SEI membrane on the negative electrode plate be not stable, therefore the SEI membrane is easily decomposed and then repaired to form into a secondary SEI membrane, and the decomposition of the secondary SEI membrane is more serious under a high temperature; and moreover, a large amount of heat is generated during the decomposition process and the repair process of the SEI membrane, which deteriorates the surface of the negative electrode plate and further deteriorates the cycle performance of the battery.
- When the value of (m×C)/(ρ×Cap) is more than 3.0, the total mass of the electrolyte inside the formated battery represented by m is too large or the concentration of the lithium salt in the electrolyte represented by C is too large, the cycle performance of the battery is also affected. The larger the total mass of the electrolyte inside the formated battery represented by m is, the less the free volume inside the battery is, the larger the internal pressure of the battery is when the same amount of gas is generated in the battery, the vent or the weak point on the case of the battery is more prone to burst early during the cycle process of the battery, thereby resulting in failure of the battery; and furthermore, the excessive electrolyte inside the formated battery will make the gas production of the battery be too large, a large amount of bubbled dark spots are prone to form on the surface of the negative electrode plate, thereby deteriorating the cycle performance and the dynamics performance of the battery. When the concentration of the lithium salt represented by C is too large, the lithium salt is easily decomposed to generate heat under a high temperature, which aggravates the heat generation inside the battery, thereby resulting in failure of the battery.
- In the lithium-ion secondary battery of the present invention, preferably, the density of the electrolyte represented by ρ is 1.0 g/cm3~1.3 g/cm3. More preferably, the density of the electrolyte represented by ρ is 1.1 g/cm3~1.25 g/cm3.
- In the lithium-ion secondary battery of the present invention, preferably, the concentration of the lithium salt in the electrolyte represented by C is 0.6 mol/L~1.2 mol/L. More preferably, the concentration of the lithium salt in the electrolyte represented by C is 0.8 mol/L~1.17 mol/L.
- In the lithium-ion secondary battery of the present invention, preferably, m/Cap is 2 g/Ah~6 g/Ah. More preferably, m/Cap is 2.3 g/Ah~5.8 g/Ah.
- In the lithium-ion secondary battery of the present invention, the positive electrode plate comprises a positive current collector and a positive film, the positive film is provided on at least one surface of the positive current collector and comprises a positive active material, a conductive agent and a binder. The types and the contents of the conductive agent and the binder are not specifically limited and may be selected based on actual demands. The type of the positive current collector is not specifically limited and may be selected based on actual demands, for example, the positive current collector may be an aluminum foil, a nickel foil or a polymer conductive film, and preferably, the positive current collector is the aluminum foil.
- According to the invention, the positive active material is LixNiaCobMcO2 (M is one or two selected from a group consisting of Mn and Al, 0.95≤x≤1.2, 0<a<1, 0<b<1, 0<c<1 and a+b+c=1), or a doping and/or coating modified compound thereof.
- The doping element may be a cation, an anion or complex ions of an anion and a cation, the purpose of the doping modification is to dope some cations, anions or complex ions into the crystal lattice of the positive active material, it is beneficial for reducing the first cycle irreversible capacity, making the integrity of the crystal structure of the positive active material more complete, making the stability of the crystal structure of the positive active material higher, and making the probability of particle break and the probability of crystal structure damage lower, in turn it is beneficial for improving the cycle performance and thermal stability of the battery. The specific method of the doping modification is not limited, for example, a wet doping may be used in the coprecipitation stage of the precursor, or a dry doping may be used in the sintering stage. Preferably, the element used in the cation doping may be one or more selected from a group consisting of Al, Zr, Ti, B, Mg, V, Cr, Zn and Y; the element used in the anion doping may be one or more selected from a group consisting of F, P and S, F is more preferable. F may not only promote the sintering of the positive active material so as to make the crystal structure of the positive active material more stable, but also may stabilize the interface between the positive active material and the electrolyte during the cycle process, therefore it is beneficial for improving the cycle performance of the battery. Preferably, a total doping amount of the cations and the anions is not more than 20%.
- The coating layer functions to separate the electrolyte and the positive active material so as to reduce the side reactions between the electrolyte and the positive active material to a large extent, reduce the dissolution of the transition metals inside the positive active material, and improve the electrochemical stability of the positive active material. The coating layer may be a carbon layer, a graphene layer, an oxide layer, an inorganic salt layer or a conductive polymer layer. Preferably, the oxide may be an oxide formed from one or more selected from a group consisting of Al, Ti, Mn, Zr, Mg, Zn, Ba, Mo and B; the inorganic salt may be one or more selected from a group consisting of Li2ZrO3, LiNbO3, Li4Ti5O12, Li2TiO3, Li3VO4, LiSnO3, Li2SiO3 and LiAlO2; the conductive polymer may be polypyrrole (PPy), poly(3,4-ethylenedioxythiophene) (PEDOT) or polyamide (PI). Preferably, a mass of the coating layer is not more than 20%.
- Preferably, LixNiaCobMcO2 may be one or more specifically selected from a group consisting of LiNi1/3Co1/3Mn1/3O2 (NCM333), LiNi0.5Co0.2Mn0.3O2 (NCM523), LiNi0.6Co0.2Mn0.2O2 (NCM622), LiNi0.8Co0.1Mn0.1O2 (NCM811), LiNi0.8Co0.1Al0.1O2 and LiNi0.85Co0.15Al0.05O2.
- In the lithium-ion secondary battery of the present invention, the negative electrode plate comprises a negative current collector and a negative film, the negative film is provided on at least one surface of the negative current collector and comprises a negative active material, a conductive agent and a binder. The types and the contents of the conductive agent and the binder are not specifically limited and may be selected based on actual demands. The type of the negative current collector is not specifically limited and may be selected based on actual demands, for example, the negative current collector may be a copper foil, a carbon coated copper foil or a polymer conductive film, and preferably, the negative current collector is the copper foil
- The negative active material may be one or more selected from a group consisting of graphite, soft carbon, hard carbon, carbon fiber, mesocarbon microbeads, silicon-based material, tin-based material and lithium titanate. The graphite is artificial graphite, natural graphite or a mixture thereof; the silicon-based material may be one or more selected from a group consisting of elemental silicon, silicon oxide, silicon carbon composite and silicon alloy; the tin-based material is one or more selected from a group consisting of elemental tin, tin oxide compound and tin alloy.
- In order to further improve the energy density and the dynamics performance of the lithium-ion secondary battery, preferably, the negative active material at least comprises graphite, and the lithium-ion secondary battery further satisfies a relationship: 0.01≤CW×VOI≤0.25. CW represents a coating weight per unit area on one surface of the negative film with a unit of g/cm2; Voi represents an OI value of the negative film.
- The OI value of the negative film is defined as VOI=C004/C110, C004 represents a characteristic diffraction peak area of (004) crystal plane in X-ray diffraction pattern of the negative electrode plate, C110 represents a characteristic diffraction peak area of (110) crystal plane in X-ray diffraction pattern of the negative electrode plate.
- The OI value of the negative film as used herein is obtained by a X-ray powder diffractometer (X'pert PRO), a X-ray diffraction pattern is obtained according to the general rules for X-ray diffractometric analysis JIS K 0131-1996 and the determination method of artificial graphite lattice parameter JB/T4220-2011, the OI value is obtained according to an equation VOI=C004/C110, C004 represents characteristic diffraction peak area of (004) crystal plane, C110 represents characteristic diffraction peak area of (110) crystal plane.
- Preferably, the coating weight per unit area on one surface of the negative film represented by CW is 0.003 g/cm2~0.015 g/cm2. More preferably, the coating weight per unit area on one surface of the negative film represented by CW is 0.006 g/cm2~0.012 g/cm2.
- Preferably, the OI value of the negative film represented by Voi is 3~40. More preferably, the OI value of the negative film represented by Voi is 5~30.
- The smaller the coating weight per unit area on one surface of the negative film represented by CW is, the more easier the infiltration of the electrolyte to the negative film is, the better the dynamics performance of the negative film is, and vice versa. However, when the coating weight per unit area on one surface of the negative film represented by CW is too small, the energy density of the battery is directly affected, and it is also more difficult to control the coating process of the negative slurry. The smaller the OI value of the negative film represented by Voi is, the more beneficial for the transmission of the lithium ions is, but exfoliation of the negative film is prone to occur when the OI value of the negative film represented by Voi is too small. Therefore when both the coating weight per unit area on one surface of the negative film and the OI value of the negative film fall within the above preferred ranges thereof, the battery may have better dynamics performance and higher energy density at the same time.
- It should be noted that, an OI value of a powder of the negative active material and a particle diameter of the negative active material both will affect the OI value of the negative film, therefore the OI value of the negative film can be adjusted by selecting an appropriate negative active material.
- Preferably, the OI value of the powder of the negative active material represented by Goi is 2~15. More preferably, the OI value of the powder of the negative active material represented by Goi is 2~11. When the OI value of the powder of the negative active material falls within the above preferred ranges thereof, the negative active material can have better isotropy, which is more beneficial for the deintercalation and the intercalation of the lithium ions. The OI value of the powder of the negative active material may be obtained by a X-ray powder diffractometer (X'pert PRO), a X-ray diffraction pattern is obtained according to the general rules for X-ray diffractometric analysis JIS K 0131-1996 and the determination method of artificial graphite lattice parameter JB/T4220-2011, the OI value is obtained according to an equation GOI=C004/C110, C004 represents characteristic diffraction peak area of (004) crystal plane of the negative active material, C110 represents characteristic diffraction peak area of (110) crystal plane of the negative active material. A certain mass of the powder of the negative active material may be directly placed in the X-ray powder diffractometer during the test process.
- Preferably, the average particle diameter of the negative active material represented by D50 is 1 µm~25 µm. More preferably, the average particle diameter of the negative active material represented by D50 is 4 µm~15 µm. Further more preferably, the average particle diameter of the negative active material represented by D50 is 6 µm~12 µm. When the particle diameter of the negative active material falls within the above preferred ranges thereof, the negative film can have better homogeneity, thereby avoiding the negative active material with too small particle diameter from affecting the performances of the battery by generating more side reactions with the electrolyte, and also avoiding the negative active material with too large particle diameter from affecting the performances of the battery by hindering the transmission of the lithium ions inside the negative active material.
- Cold pressing parameters (such as cold pressing speed, cold pressing temperature, cold pressing pressure, cold pressing times and the like) of the negative electrode plate will also affect the orientation degree of the stacked negative active material particles in the negative film and in turn affect the OI value of the negative film, therefore the OI value of the negative film can also be adjusted by controlling the cold pressing parameters of the negative electrode plate.
- Preferably, a pressing density of the negative film is 0.8 g/cm3~2.0 g/cm3. More preferably, the pressing density of the negative film is 1.0 g/cm3~1.6 g/cm3. Further more preferably, the pressing density of the negative film is 1.4 g/cm3~1.6 g/cm3. When the pressing density of the negative film falls within the above preferred ranges thereof, the integrity of the negative active material particle is higher, and the electrical contact between the negative active material particles is better.
- Furthermore, the OI value of the negative film can also be adjusted by using magnetic field inducing technique during the coating process of the negative slurry. The direction of the magnetic field and the value of the magnetic field can be reasonably adjusted according to the required OI value of the negative film.
- In the lithium-ion secondary battery of the present invention, the type of the separator is not specifically limited, and the separator may be any separator used in existing batteries, for example, the separator may be a polyethylene membrane, polypropylene membrane, a polyvinylidene fluoride membrane and a multilayer composite membrane thereof, but the present invention is not limited thereto.
- In the lithium-ion secondary battery of the present invention, the specific types and the specific components of the lithium salt and the organic solvent are not specifically limited and may be selected based on actual demands.
- Preferably, the lithium salt may be one or more selected from a group consisting of lithium hexafluorophosphate, lithium tetrafluoroborate, lithium perchlorate, lithium hexafluoroarsenate, lithium tetrafluoro(oxalato)phosphate, LiN(SO2RF)2, LiN(SO2F)(SO2RF), lithium bis(trifluoromethanesulfonyl)imide, lithium bis(fluorosulfonyl)imide, lithium bis(oxalato)borate and lithium difluoro(oxalato)borate, the substituent RF is characterized by CnF2n+1, n is integer of 1~10.
- Preferably, the organic solvent may comprise one or more selected from a group consisting of cyclic carbonate, chain carbonate and carboxylic ester. The cyclic carbonate may be one or more selected from a group consisting of ethylene carbonate, propylene carbonate, butylene carbonate and γ-butyrolactone; the chain carbonate may be one or more selected from a group consisting of dimethly carbonate, diethyl carbonate, ethyl methyl carbonate and ethyl propyl carbonate; the carboxylic ester may be one or more selected from a group consisting of methyl formate, ethyl formate, methyl acetate, ethyl acetate, propyl propionate, ethyl butyrate, ethyl propionate and propyl butyrate. The electrolyte may further comprise functional additives, such as vinylene carbonate, ethylene sulfate, propane sultone, fluoroethylene carbonate and the like.
- The lithium-ion secondary battery of the present invention can be prepared according to methods known in the art, the parameters of the present invention need to be considered before the battery is prepared, for example, a part of the electrolyte is consumed in the formation process of the battery, therefore the initial mass of the electrolyte needs to be calculated based on experience in order to make the total mass of the electrolyte inside the formated battery meet the requirements, the initial mass of the electrolyte = the total mass of the electrolyte inside the formated battery + the mass of the electrolyte consumed in the formation process. In the lithium-ion secondary battery of the present invention, the mass of the electrolyte consumed in the formation process is 0.1 g/Ah~0.3 g/Ah.
- Hereinafter the present invention will be described in detail in combination with examples.
- A rated capacity of the electrode assembly represented by Cap was 50 Ah.
- LiNi0.5Co0.2Mn0.3O2 (positive active material), acetylene black (conductive agent) and PVDF (binder) according to a mass ratio of 96:2:2 were uniformly mixed with NMP (solvent), which then became homogeneous under stirring via a vacuum mixer, a positive slurry was obtained; then the positive slurry was uniformly coated on aluminum foil (positive current collector), drying was then performed under room temperature and continual drying was performed in an oven, which was then followed by cold pressing and plate cutting, finally the positive electrode plate was obtained. A pressing density of the positive film was 4.0 g/cm3, a porosity of the positive film was 12%.
- Graphite (negative active material), acetylene black (conductive agent), CMC (thickening agent) and SBR (binder) according to a mass ratio of 96.4:1:1.2:1.4 were uniformly mixed with deionized water (solvent), which then became homogeneous under stirring via a vacuum mixer, a negative slurry was obtained; then the negative slurry was uniformly coated on copper foil (negative current collector), a coating weight per unit area on one surface was 0.011 g/cm2, drying was then performed under room temperature and continual drying was performed in an oven, which was then followed by cold pressing and plate cutting, finally the negative electrode plate was obtained. An OI value of the negative film was 25.
- The positive electrode plate, the separator (polyethylene membrane) and the negative electrode plate were laminated in order, the separator was positioned between the positive electrode plate and the negative electrode plate so as to separate the positive electrode plate from the negative electrode plate, then the positive electrode plate, the separator and the negative electrode plate were wound together to form an electrode assembly.
- Ethylene carbonate, ethyl methyl carbonate and diethyl carbonate according to a volume ratio of 1:1:1 were mixed together to obtain an organic solvent, then sufficiently dried LiPF6 was dissolved into the mixed organic solvent to obtain an electrolyte, a concentration of the electrolyte represented by C was 0.8 mol/L, a density of the electrolyte represented by ρ was 1.1 g/cm3.
- The electrode assembly was put into a case, which was followed by baking, injecting 112 g electrolyte, vacuum packaging, standby, formation (the mass of the electrolyte consumed in the formation process was 0.15 g/Ah), shaping and the like, finally a lithium-ion secondary battery was obtained.
- Preparation of examples 2-9 was the same as that in example 1, and the specific differences were shown in Table 1. And in the preparation of the negative electrode plate, after an appropriate negative active material was selected, the negative film having different OI values could be obtained by reasonably adjusting the cold pressing parameters or additionally using the magnetic field inducing technique, the direction of the magnetic field and the value of the magnetic field could be reasonably adjusted according to the required OI value.
- Hereinafter test processes of the lithium-ion secondary batteries were described.
- At 25 °C, the lithium-ion secondary batteries prepared in the examples and the comparative examples were fully charged at a constant current of 4 C and fully discharged at a constant current of 1 C for 10 cycles, then the lithium-ion secondary batteries were fully charged at a constant current of 4 C, then the negative electrode plates were disassembled from the lithium-ion secondary batteries, and the lithium precipitation on the surface of each negative electrode plate was observed. The lithium-precipitation area of less than 5% was considered to be slight lithium precipitation, the lithium-precipitation area of 5% to 40% was considered to be moderate lithium precipitation, and the lithium-precipitation area of more than 40% was considered to be serious lithium precipitation.
- At 25 °C, the lithium-ion secondary batteries prepared in the examples and the comparative examples were charged at a constant current of 3 C and discharged at a constant current of 1 C, the fully charging and discharging process was repeated until the capacity of the lithium-ion secondary battery decayed to 80% of the initial capacity, and the cycle number of the lithium-ion secondary battery was recorded. Table 1 illustrated the parameters of examples 1-9. Table 2 illustrated the test results of examples 1-9.
Table 1 Parameters of examples 1-9 Positive electrode plate Negative electrode plate Rated capacity of battery Cap (Ah) Electrolyte m/ Cap (m×C)/ (ρ×Cap) Positive active material Pressing density of positive film (g/cm3) Porosity of positive film Negative active material Coating weight CW (g/cm2) OI value of negative film Voi Total mass of injected electrolyte (g) Total mass of electrolyte inside formated battery m (g) Density of electrolyte ρ (g/cm3) Concentrati on of lithium salt C (mol/L) Example 1 (Comparati ve) NCM 523 4 12% graphite 0.011 25 50 112 105 1.1 0.8 2.1 1.52 Example 2 (Comparati ve) NCM 523 3.9 17% graphite 0.01 14 75 175 164 1.13 0.9 2.2 1.74 Example 3 NCM 523 3.7 20% graphite 0.095 18 66 175 165 1.14 0.97 2.5 2.13 Example 4 NCM 523 3.55 25% graphite 0.086 16 108 300 287 1.15 1.14 2.7 2.63 Example 5 NCM 523 3.52 25% graphite 0.008 11 43 135 130 1.17 1.16 3.0 2.99 Example 6 (Comparati ve) NCM 523 3.5 28% graphite 0.009 7 125 450 431 1.25 1.2 3.5 3.31 Example 7 (Comparati ve) NCM 523 3.2 30% graphite 0.007 13 200 740 710 1.22 1.2 3.6 3.49 Example 8 (Comparati ve) NCM 523 3.5 28% graphite 0.009 7 125 500 481 1.25 1.2 3.9 3.70 Example 9 (Comparati ve) NCM 523 3.2 30% graphite 0.007 13 200 740 710 1.35 1.4 3.6 3.68 Table 2 Test results of examples 1-9 Cycle number Dynamics performance Example 1 (Comparative) 1500 slight lithium precipitation Example 2 (Comparative) 2000 no lithium precipitation Example 3 2800 no lithium precipitation Example 4 3000 no lithium precipitation Example 5 2200 no lithium precipitation Example 6 (Comparative) 1800 slight lithium precipitation Example 7 (Comparative) 1500 no lithium precipitation Example 8 (Comparative) 400 serious lithium precipitation Example 9 (Comparative) 700 moderate lithium precipitation - When the lithium-ion secondary battery of the present invention was designed, by comprehensively considering the rated capacity of the battery, the mass of the electrolyte inside the formated battery and the intrinsic parameters of the electrolyte, the lithium-ion secondary battery could have good dynamics performance and longer cycle life at the same time.
- The positive active material used in all examples 1-9 was NCM523, including inventive and comparative examples. In inventive examples 3-5, the lithium-ion secondary battery satisfied a relationship 2.13≤(m×C)/(ρ> Cap)≤3.0, the lithium-ion secondary battery had good dynamics performance and longer cycle life at the same time. In examples 8-9, the injected electrolyte was too much or the concentration of the lithium salt in the electrolyte was larger to make the value of (m×C)/(ρ×Cap) be larger, both the dynamics performance and the cycle life of the lithium-ion secondary battery were very bad. This was because, the more the injected electrolyte was, the larger the total mass of the electrolyte inside the formated battery was, the smaller the free volume inside the battery was, the larger the gas production in the battery was, the larger the internal pressure of the battery was, the vent or the weak point on the case of the battery was more prone to burst early during the cycle process of the battery, thereby resulting in failure of the battery. And moreover, the excessive electrolyte inside the formated battery also made the gas production in the battery increase, a large amount of bubbled dark spots were prone to form on the surface of the negative electrode plate, thereby also deteriorating the cycle performance and the dynamics performance of the battery. When the concentration of the lithium salt was larger, the lithium salt was more easily decomposed to generate heat under a high temperature, which also aggravated the heat generation inside the battery, thereby also resulting in failure of the battery during the cycle process; and moreover, the viscosity of the electrolyte was also larger, the transmission resistance of the lithium ions increased, thereby also affecting the dynamics performance of the battery.
Claims (12)
- A lithium-ion secondary battery comprising a positive electrode plate, a negative electrode plate, a separator and an electrolyte, the electrolyte comprising a lithium salt and an organic solvent;wherein the positive electrode plate comprises a positive current collector and a positive film, the positive film is provided on at least one surface of the positive current collector and comprises a positive active material, the positive active material comprises one or more selected from a group consisting of LixNiaCobMcO2 and a doping and/or coating modified compound thereof, M is one or two selected from a group consisting of Mn and Al, 0.95≤x≤1.2, 0<a<1, 0<b<1, 0<c<1;characterized in thatthe lithium-ion secondary battery satisfies a relationship: 2.13≤(m×C)/(ρ×Cap)≤3.0; wherein m represents a total mass of the electrolyte inside the formated battery with a unit of g; ρ represents a density of the electrolyte with a unit of g/cm3; C represents a concentration of the lithium salt in the electrolyte with a unit of mol/L; Cap represents a rated capacity of the battery with a unit of Ah, which is measured as described in the description.
- The lithium-ion secondary battery according to Claim 1, wherein the lithium-ion secondary battery satisfies a relationship: 2.13≤(m×C)/(ρ×Cap)≤2.63.
- The lithium-ion secondary battery according to Claim 1, wherein a+b+c=1.
- The lithium-ion secondary battery according to Claim 1, wherein the negative electrode plate comprises a negative current collector and a negative film, the negative film is provided on at least one surface of the negative current collector and comprises a negative active material, the negative active material at least comprises graphite.
- The lithium-ion secondary battery according to any one of Claims 1-2, wherein the density ρ of the electrolyte represented by ρ is 1.0 g/cm3~1.3 g/cm3, preferably is 1.1 g/cm3~1.25 g/cm3.
- The lithium-ion secondary battery according to any one of Claims 1-2, wherein C is 0.6 mol/L~1.2 mol/L, preferably is 0.8 mol/L~1.17 mol/L, wherein C represents a concentration of the lithium salt in the electrolyte with a unit of mol/L.
- The lithium-ion secondary battery according to any one of Claims 1-2, wherein m/Cap is 2 g/Ah~6 g/Ah;preferably, m/Cap is 2 g/Ah~3.0 g/Ah,wherein m represents a total mass of the electrolyte inside the formated battery with a unit of g; and wherein Cap represents a rated capacity of the battery with a unit of Ah, which is measured as described in the description.
- The lithium-ion secondary battery according to Claim 1, wherein a pressing density of the positive film is 3.3 g/cm3~3.55 g/cm3, preferably is 3.35 g/cm3~3.5 g/cm3.
- The lithium-ion secondary battery according to Claim 1, wherein a porosity of the positive film is 20%~40%, preferably is 30%~40%.
- The lithium-ion secondary battery according to Claim 4, wherein a coating weight per unit area on one surface of the negative film represented by CW is 0.006 g/cm2~0.012 g/cm2, preferably is 0.007 g/cm2~0.009 g/cm2.
- The lithium-ion secondary battery according to Claim 4, wherein an OI value of the negative film represented by Voi is 11~30, preferably is 14~30, more preferably is 16~30, wherein Voi is defined as C004/C110, wherein C004 represents a characteristic diffraction peak area of (004) crystal plane in X-ray diffraction pattern of the negative electrode plate, and wherein C110 represents a characteristic diffraction peak area of (110) crystal plane in X-ray diffraction pattern of the negative electrode plate, and wherein C004 and C110 are measured as described in the description.
- The lithium-ion secondary battery according to Claim 4, wherein a pressing density of the negative film is 1.0 g/cm3~1.6 g/cm3, preferably is 1.4 g/cm3~1.6 g/cm3.
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| EP24211418.9A Division EP4481879A3 (en) | 2018-07-04 | 2019-06-04 | Lithium-ion secondary battery |
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| EP (2) | EP4481879A3 (en) |
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| CN112886050B (en) | 2019-11-29 | 2022-07-05 | 宁德时代新能源科技股份有限公司 | Secondary battery and device containing the same |
| ES2926653T3 (en) | 2019-12-06 | 2022-10-27 | Contemporary Amperex Technology Co Ltd | Secondary battery and apparatus including the secondary battery |
| EP4277011A3 (en) | 2020-04-02 | 2024-01-17 | Contemporary Amperex Technology Co., Limited | Secondary battery and device comprising secondary battery |
| CN114122491A (en) * | 2020-08-31 | 2022-03-01 | 深圳新宙邦科技股份有限公司 | Lithium ion battery |
| EP4229066A1 (en) | 2020-10-13 | 2023-08-23 | Dow Silicones Corporation | Preparation of organosilicon compounds with aldehyde functionality |
| CN113597684B (en) * | 2020-11-10 | 2023-03-10 | 宁德新能源科技有限公司 | Negative electrode active material and electrochemical device and electronic device using same |
| US20220190389A1 (en) * | 2020-12-11 | 2022-06-16 | Sila Nanotechnologies Inc. | Electrolytes for lithium-ion battery cells with volume-changing anode particles |
| CN118899512B (en) * | 2021-07-30 | 2026-03-13 | 宁德时代新能源科技股份有限公司 | Secondary batteries and battery modules, battery packs and electrical devices containing such secondary batteries. |
| CN114221035B (en) * | 2021-12-13 | 2023-10-13 | 上海瑞浦青创新能源有限公司 | Ternary lithium ion secondary battery |
| CN114243089B (en) * | 2021-12-13 | 2023-10-13 | 上海瑞浦青创新能源有限公司 | Lithium iron phosphate secondary battery |
| CN114937807A (en) * | 2022-05-23 | 2022-08-23 | 江苏正力新能电池技术有限公司 | Lithium ion battery and power utilization device |
| CN115020789B (en) * | 2022-06-06 | 2024-06-18 | 江苏正力新能电池技术有限公司 | Lithium ion secondary battery and power-using device |
| CN115064762B (en) * | 2022-07-28 | 2025-04-01 | 蜂巢能源科技股份有限公司 | A lithium ion battery |
| CN116666729A (en) * | 2022-09-26 | 2023-08-29 | 欣旺达电动汽车电池有限公司 | Secondary battery and electricity utilization device |
| CN116759646B (en) * | 2023-06-30 | 2024-09-27 | 宁德时代新能源科技股份有限公司 | Secondary batteries and electrical devices |
| CN117525630B (en) * | 2023-11-10 | 2025-01-28 | 天津储翕科技有限公司 | A method and device for multi-field collaborative repair of retired batteries |
| CN119833759A (en) * | 2024-03-18 | 2025-04-15 | 宁德时代新能源科技股份有限公司 | Lithium ion battery and power utilization device |
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| US11031622B2 (en) | 2021-06-08 |
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| CN108878956B (en) | 2019-06-11 |
| CN110165284A (en) | 2019-08-23 |
| CN110165284B (en) | 2020-09-11 |
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| EP4481879A3 (en) | 2025-02-26 |
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| US20200014061A1 (en) | 2020-01-09 |
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| CN108878956A (en) | 2018-11-23 |
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